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Periodic Vibration Gaussian: Dynamic Urban Scene Reconstruction and Real-time Rendering

About

Modeling dynamic, large-scale urban scenes is challenging due to their highly intricate geometric structures and unconstrained dynamics in both space and time. Prior methods often employ high-level architectural priors, separating static and dynamic elements, resulting in suboptimal capture of their synergistic interactions. To address this challenge, we present a unified representation model, called Periodic Vibration Gaussian (PVG). PVG builds upon the efficient 3D Gaussian splatting technique, originally designed for static scene representation, by introducing periodic vibration-based temporal dynamics. This innovation enables PVG to elegantly and uniformly represent the characteristics of various objects and elements in dynamic urban scenes. To enhance temporally coherent and large scene representation learning with sparse training data, we introduce a novel temporal smoothing mechanism and a position-aware adaptive control strategy respectively. Extensive experiments on Waymo Open Dataset and KITTI benchmarks demonstrate that PVG surpasses state-of-the-art alternatives in both reconstruction and novel view synthesis for both dynamic and static scenes. Notably, PVG achieves this without relying on manually labeled object bounding boxes or expensive optical flow estimation. Moreover, PVG exhibits 900-fold acceleration in rendering over the best alternative.

Yurui Chen, Chun Gu, Junzhe Jiang, Xiatian Zhu, Li Zhang• 2023

Related benchmarks

TaskDatasetResultRank
Novel View SynthesisnuScenes (val)
FID48.15
33
Novel View SynthesisWaymo
PSNR31.89
28
Image ReconstructionWaymo
PSNR34.37
22
Novel Trajectory View SynthesisWaymo Lane Change
NTA IoU0.256
16
Novel View SynthesisnuScenes Shift ± 2 v1.0-trainval (test)
FID60.44
14
Depth ReconstructionWaymo interp.
MedL211.97
13
Spatio-temporal Driving Scene InterpolationWaymo Open Dataset
PSNR28.11
12
Spatio-temporal Driving Scene ReconstructionWaymo Open Dataset
PSNR32.46
12
Novel View SynthesisWaymo interp.
PSNR27.19
12
Novel ego-viewpoint synthesisOff-trajectory benchmark Lane-change scenario, 4m shift
NTA-IoU25.6
10
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